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Mitochondrial matrix chaperone and c-myc inhibition causes enhanced lethality in glioblastoma
Chiaki Tsuge Ishida1, Chang Shu1, Marc-Eric Halatsch2
1Department of Pathology and Cell Biology, Columbia University Medical Center, New York, NY, USA.
Abstract:
Malignant gliomas display high levels of the transcription factor c-myc and organize a tumor specific chaperone network within mitochondria. Here, we show that c-myc along with mitochondrial chaperone inhibition displays massive tumor cell death. Inhibition of mitochondrial matrix chaperones and c-myc was established by utilizing genetic as well as pharmacological approaches. Bromodomain and extraterminal (BET) family protein inhibitors, JQ1 and OTX015, were used for c-myc inhibition. Gamitrinib was applied to interfere with mitochondrial matrix chaperones. A xenograft model was used to determine the in vivo efficacy. Combined inhibition of c-myc and mitochondrial matrix chaperones led to a synergistic reduction of cellular proliferation (CI values less than 1) in established glioblastoma, patient-derived xenograft and stem cell-like glioma cultures. The combinatorial treatment of BET inhibitors and Gamitrinib elicited massive apoptosis induction with dissipation of mitochondrial membrane potential and activation of caspases. Mechanistically, BET-inhibitors and Gamitrinib mediated a pronounced integrated stress response with a PERK-dependent up regulation of ATF4 and subsequent modulation of Bcl-2 family of proteins with down-regulation of Mcl-1 and its interacting partner, Usp9X, and an increase in pro-apoptotic Noxa. Blocking ATF4 by siRNA attenuated Gamitrinib/BET inhibitor mediated increase of Noxa. Knockdown of Noxa and Bak protected from the combinatorial treatment. Finally, the combination treatment of Gamitrinib and OTX015 led to a significantly stronger reduction of tumor growth as compared to single treatments in a xenograft model of human glioma without induction of toxicity. Thus, Gamitrinib in combination with BET-inhibitors should be considered for the development for clinical application.
Insights
Combining c-myc inhibition with mitochondrial chaperone blockers triggers significant glioma cell death. This dual approach, using BET inhibitors and Gamitrinib, shows promise for treating malignant gliomas.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Malignant gliomas exhibit elevated c-myc levels and a unique mitochondrial chaperone network.
- Targeting these specific pathways presents a potential therapeutic strategy.
Purpose of the Study:
- To investigate the synergistic effect of inhibiting c-myc and mitochondrial matrix chaperones in glioma.
- To evaluate the therapeutic potential of this combination in preclinical models.
Main Methods:
- Utilized genetic and pharmacological methods to inhibit c-myc (using BET inhibitors like JQ1, OTX015) and mitochondrial matrix chaperones (using Gamitrinib).
- Assessed cellular proliferation, apoptosis, mitochondrial membrane potential, and caspase activation.
- Employed a xenograft model for in vivo efficacy studies.
- Investigated the integrated stress response pathway, including PERK, ATF4, and Bcl-2 family proteins.
Main Results:
- Combined inhibition synergistically reduced proliferation in various glioma cultures (CI < 1).
- The combination therapy induced massive apoptosis, dissipated mitochondrial membrane potential, and activated caspases.
- Mechanistically, the treatment activated an integrated stress response, modulated Bcl-2 family proteins (downregulating Mcl-1, upregulating Noxa), and this was dependent on ATF4.
- Knockdown of Noxa and Bak partially rescued cells from treatment-induced death.
- In vivo, the combination of Gamitrinib and OTX015 significantly reduced tumor growth without toxicity.
Conclusions:
- Combined inhibition of c-myc and mitochondrial matrix chaperones offers a potent synergistic effect against malignant gliomas.
- This combination therapy induces apoptosis via the integrated stress response pathway.
- Gamitrinib and BET inhibitors represent a promising combination for future clinical development in glioma treatment.
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